Bekmezci Muhammed, Yildizay Hasan Donat, Kokoglu Busra, Sen Fatih
Sen Research Group, Department of Biochemistry, Dumlupinar University Kutahya Turkey fatihsen1980gmail.com.
Department of Materials Science & Engineering, Faculty of Engineering, Dumlupinar University Kutahya Turkey.
RSC Adv. 2025 Aug 5;15(34):27848-27863. doi: 10.1039/d5ra03938j. eCollection 2025 Aug 1.
In parallel with the developments in the field of energy, research on fuel cells, a renewable energy source, has accelerated. At this rate, the catalysts developed for fuel cells are of great importance. In this study, Platinum (Pt) and Vanadium (V) nanomachines supported on Multi-Walled Carbon Nanotubes (MWCNT) were successfully synthesized by the chemical reduction method, as it is a fast method. Alkaline medium was preferred as the buffer solution for the catalysts used in the methanol oxidation reaction (MOR). The morphology, particle size, and composition of the synthesized PtV@MWCNT catalysts were analyzed by Transmission Electron Microscopy (TEM), Scanning Electron Microscope (SEM), Raman Spectroscopy, and X-ray Diffractometer (XRD). The particle size of the PtV@MWCNT structure was measured as 4.40 nm and the crystallite size as 1.49 nm according to the Debye-Scherer equation. The MWCNT-supported bimetallic nanocatalysts showed 40.72% higher electrochemical activities compared to the monometallic V catalyst at ambient temperature, with MOR activity higher than that of the Pt structure. The catalytic activity of the PtV@MWCNT nanostructure was times higher than that of the PtV structure. Finally, the high catalytic activity, increased durability, and improved stability of PtV@MWCNT make this catalyst emerge as a promising electrocatalyst for the development of direct alcohol fuel cells. This study yielded innovative results demonstrating the activity of metal V-based bimetallic catalysts in the catalysts required for MOR. The research is highly valuable for fuel cell applications.
随着能源领域的发展,对作为可再生能源的燃料电池的研究加速进行。按照这个速度,为燃料电池开发的催化剂至关重要。在本研究中,通过化学还原法成功合成了负载在多壁碳纳米管(MWCNT)上的铂(Pt)和钒(V)纳米机器,因为这是一种快速方法。碱性介质被选作甲醇氧化反应(MOR)中所用催化剂的缓冲溶液。通过透射电子显微镜(TEM)、扫描电子显微镜(SEM)、拉曼光谱和X射线衍射仪(XRD)分析了合成的PtV@MWCNT催化剂的形态、粒径和组成。根据德拜 - 谢乐方程,PtV@MWCNT结构的粒径测量为4.40 nm,微晶尺寸为1.49 nm。与单金属V催化剂相比,MWCNT负载的双金属纳米催化剂在室温下的电化学活性高40.72%,其MOR活性高于Pt结构。PtV@MWCNT纳米结构的催化活性比PtV结构高若干倍。最后,PtV@MWCNT的高催化活性、更高的耐久性和更好的稳定性使其成为直接醇类燃料电池开发中一种有前景的电催化剂。本研究产生了创新结果,证明了金属V基双金属催化剂在MOR所需催化剂中的活性。该研究对燃料电池应用具有很高的价值。